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Ligand Binding and Linkage00:49

Ligand Binding and Linkage

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Allosteric proteins have more than one ligand binding site; the binding of a ligand to any of these sites influences the binding of ligands to the other sites. When a protein is allosteric, its binding sites are called coupled or linked.  In the case of enzymes, the site that binds to the substrate is known as the active site and the other site is known as the regulatory site. When a ligand binds to the regulatory site, this leads to conformational changes in the protein that can influence...
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Covalently Linked Protein Regulators02:04

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Proteins can undergo many types of post-translational modifications, often in response to changes in their environment. These modifications play an important role in the function and stability of these proteins. Covalently linked molecules include functional groups, such as methyl, acetyl, and phosphate groups, and also small proteins, such as ubiquitin. There are around 200 different types of covalent regulators that have been identified.
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Allosteric Proteins-ATCase01:19

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Binding sites linkages can regulate a protein's function.  For example, enzyme activity is often regulated through a feedback mechanism where the end product of the biochemical process serves as an inhibitor.
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Cooperative allosteric transitions can occur in multimeric proteins, where each subunit of the protein has its own ligand-binding site. When a ligand binds to any of these subunits, it triggers a conformational change that affects the binding sites in the other subunits; this can change the affinity of the other sites for their respective ligands. The ability of the protein to change the shape of its binding site is attributed to the presence of a mix of flexible and stable segments in the...
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Protein Complexes with Interchangeable Parts01:57

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Groups of proteins may form a complex where each protein in this complex has a different role in the overall execution of the complex’s function. Often some of the proteins in the complex can be replaced by a closely related variant to give a complex that contains many of the same components yet is functionally distinct.
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Introduction to Mechanisms of Enzyme Catalysis01:13

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For many years, scientists thought that enzyme-substrate binding took place in a simple "lock-and-key" fashion. This model stated that the enzyme and substrate fit together perfectly in one instantaneous step. However, current research supports a more refined view scientists call induced fit. The induced-fit model expands upon the lock-and-key model by describing a more dynamic interaction between enzyme and substrate. As the enzyme and substrate come together, their interaction causes...
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Related Experiment Video

Updated: Jul 1, 2025

Simultaneous Affinity Enrichment of Two Post-Translational Modifications for Quantification and Site Localization
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Simultaneous Affinity Enrichment of Two Post-Translational Modifications for Quantification and Site Localization

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Bifunctional enzyme provides absolute concentration robustness in multisite covalent modification networks.

Badal Joshi1, Tung D Nguyen2

  • 1Department of Mathematics, California State University San Marcos, San Marcos, USA.

Journal of Mathematical Biology
|March 1, 2024
PubMed
Summary

Bifunctional enzymes enable absolute concentration robustness in biochemical networks. These enzymes promote production when isolated and degradation when bound, creating a robust species.

Keywords:
Absolute concentration robustnessBifunctional enzymeCovalent modification networkFutile cycleParadoxical enzyme

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Area of Science:

  • Biochemistry
  • Systems Biology
  • Enzyme Kinetics

Background:

  • Biochemical networks display complex dynamics like multistationarity and oscillations.
  • Absolute concentration robustness is a key property for biological system stability.
  • Understanding robustness mechanisms is crucial for systems biology.

Purpose of the Study:

  • To identify conditions for absolute concentration robustness in covalent modification networks.
  • To elucidate the role of bifunctional enzymes in conferring robustness.
  • To provide a mathematical framework for analyzing robustness in these networks.

Main Methods:

  • Analysis of biochemical covalent modification networks.
  • Focus on the properties of bifunctional enzymes.
  • Mathematical modeling of enzyme-substrate interactions.

Main Results:

  • A bifunctional enzyme is essential for conferring absolute concentration robustness.
  • The enzyme's dual role (production when isolated, degradation when bound) creates robustness.
  • Conditions and specific species exhibiting robustness were identified.

Conclusions:

  • Bifunctional enzymes are key to achieving absolute concentration robustness in covalent modification networks.
  • This study provides a unified mathematical description of bifunctionality and robustness.
  • The findings offer insights into the design principles of robust biological systems.